发明名称 DISCOVERING OBJECT PATHWAYS IN A CAMERA NETWORK
摘要 In an approach to tracking at least one target subject in a camera network, a search is started to find a target subject on a camera within a camera network. Features are extracted from the target subject and search queries are initiated in other nearby cameras within the camera network. Search queries attempt to detect target subjects and present the finds in a ranked order. Application of aggregate searches in multiple cameras and prior search results are used to improve matching results in the camera network; propagate a search of the target subject to discover the full pathway in the camera network; and project future occurrences of the target subject in subsequent cameras in the camera network.
申请公布号 US2017091563(A1) 申请公布日期 2017.03.30
申请号 US201615359775 申请日期 2016.11.23
申请人 International Business Machines Corporation 发明人 Chen Xiao Long;Lv Na;Yan Zhe;Zhai Yun;Zhao Zhuo
分类号 G06K9/00;G06K9/66;H04N7/18;G06K9/62;G06T7/40;G06T7/20 主分类号 G06K9/00
代理机构 代理人
主权项 1. A computer system for tracking at least one target subject in a camera network, the computer system comprising: one or more computer processors; one or more non-transitory computer readable storage media; and program instructions stored on the one or more non-transitory computer readable storage media for execution by at least one of the one or more computer processors, the program instructions comprising: program instructions to receive, at a user interface, a selection of at least one target subject in a first image taken by a first camera from a user;program instructions to extract, by a feature module, one or more features of the selected at least one target subject;program instructions to store, by a feature database, the extracted one or more features of the selected at least one target subject;program instructions to correlate, by a correlation module, the extracted one or more features of the selected at least one target subject, among a set of at least two cameras;program instructions to apply, by the correlation module, a first equation which quantifies a probabilistic likelihood another target subject found in a second camera is the same as the target subject found in the first camera, wherein the probabilistic likelihood is defined in terms of L as: L (Target Subject in First Camera 4 Target Subject in Second Camera)=FFirst Camera (Target Subject in First Camera){circle around (x)} FSecond Camera (Target Subject in Second Camera)); where {circle around (x)} is a correlation between the Target Subject in First Camera and Target Subject in Second Camera; program instructions to apply, by a feature weight module, a second equation which takes a linear combination of the correlated one or more extracted features to quantify a ranking while matching the other target subject found in the second camera and the target subject found in the first camera, and modifying a criticality associated with a plurality of features among the extracted one or more features over another plurality of features among the extracted one or more features, wherein the ranking is described in terms of E as: E=Sumi→n(wciwfiFi); where E is the rank measure, Sumiis the linear summation of a feature, n is the number of correlation models, wci is the correlation weight of the correlation using a feature i, wfi is the feature weight of the feature i for the current searched target subject, and Fi is the feature correlation model between the two cameras using a feature i; program instructions to rank, by a ranking module, a plurality of potential matches for the first target based on the second equation, wherein a higher E value for a potential match among the plurality of potential matches is indicative of a higher rank based on parameters configured in the second equation; program instructions to automatically re-rank, by the ranking module, the plurality of potential matches by reconfiguring the parameters in the first equation and the second equation; program instructions to iteratively perform, by the ranking module, one or more search processes with a new input to enhance a camera-to-camera correlation based on the one or more extracted features; responsive to determining the selected at least one target subject is present in one or more images from a set of cameras, program instructions to apply, by a predicting adjustment module, a first analytics solution, wherein the first analytics solution predicts an occurrence of the selected at least one target in a next camera based on finding the at least one selected target in a previous camera; responsive to determining the selected at least one target subject is present in the one or more images from the set of cameras, program instructions to apply, by the correlation refinement module, a second analytics solution, wherein the second analytics solution populates a first plurality of queries based on one or more correlation models; and responsive to determining the selected at least one target subject is present in the one or more images from the set of cameras, program instructions to apply, by the feature weight module, a third analytics solution, wherein the third analytics solution populates a second plurality of queries based on weighted criticality of the one or more extracted features.
地址 Armonk NY US
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